Transfer temporary storage device for electronic parts
By designing anti-slip slots and a transfer temporary storage device with a multi-layer stacking structure, the problems of sheet material slippage and stacking are solved, production efficiency and equipment stability are improved, and labor fatigue and costs are reduced.
Patent Information
- Application Number
- CN202422885027.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-26
- Publication Date
- 2025-09-05
- Estimated Expiration
- 2034-11-26
AI Technical Summary
The existing transit temporary storage device is prone to material slipping during transportation, causing damage to equipment and materials, and cannot be stacked in multiple layers, affecting production efficiency and increasing manual labor.
A transit temporary storage device including a bottom plate group, side plates, a top plate and a limit bar is designed. Slots and stoppers are set to prevent the material plates from slipping, and multi-layer stacking is achieved through air-avoidance grooves. The combination of bayonet and material trough facilitates material transfer.
It effectively prevents sheet materials from slipping, achieves stable multi-layer stacking, reduces production costs, improves production efficiency, reduces the number of manual handling times, and improves the stability of equipment use.
Smart Images

Figure CN223303319U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the field of electronic component production equipment, in particular to a temporary transfer storage device for electronic components. Background Art
[0002] Chip inductors, also known as power inductors, high-current inductors, and surface-mount high-power inductors, are commonly used components in modern electronic devices. The production process for chip inductors involves multiple steps, including trimming, surface cleaning, and external testing. Each step significantly impacts the performance and quality of the chip inductor and therefore cannot be ignored. Due to the numerous production steps, chip inductors often need to be transferred between various devices during production, and each step requires varying operating times. Therefore, existing technologies primarily utilize transfer and temporary storage devices to centrally transfer and temporarily store chip inductors to coordinate the production process.
[0003] The structure of the existing transit temporary storage device is relatively simple, usually using a bottom plate, two side plates and a top plate to form a cubic frame, and then multiple layers of material plates are set in the cubic frame to achieve temporary storage of chip inductors. When a transit temporary storage device is full, it is necessary to manually transfer the device to other equipment. Since the existing transit temporary storage device does not have a fixed structure for the material plates, the material plates may slip and fall during the moving process, causing damage to the equipment and materials, and increasing production costs. At the same time, when manually moving the transit temporary storage device, it mainly relies on the handle set above the top plate. The presence of the handle makes it impossible to stack the transit temporary storage device in multiple layers. When using a cart, only one layer can be placed for transfer. The number of transfers per time is small, and manual labor needs to frequently return between various devices to carry the materials, which not only makes the workers overworked but also causes the equipment to shut down frequently, resulting in reduced production efficiency. Utility Model Content
[0004] In order to overcome the shortcomings and problems of the existing technology, improve the production efficiency of chip inductors, reduce production costs and labor fatigue, and at the same time improve the transfer efficiency of chip inductors, the utility model provides a transfer temporary storage device for electronic components.
[0005] The utility model is realized through the following technical solutions:
[0006] A transit and temporary storage device for electronic components comprises a bottom plate group, side plates are provided on both sides of the top surface of the bottom plate group, a top plate is provided on the top of the side plates, several layers of material plates are vertically arranged between the two side plates, a first limit bar and a second limit bar are provided at the front and rear ends of the side plates respectively, a first slot is provided between the first limit bar and the side plates, a stopper is provided in the first slot for preventing the material plates from slipping, and a second slot is provided on the second limit bar.
[0007] The bottom plate group includes a first bottom plate and a second bottom plate. An air avoidance groove is provided between the first bottom plate and the second bottom plate, and the air avoidance groove matches the top plate.
[0008] A connecting protrusion is provided on a side of the first limiting strip adjacent to the side plate, and a recess matching the connecting protrusion is provided on the side surface of the side plate, and the connecting protrusion is fixed to the recess by threads.
[0009] One end of the first limiting strip is connected to the first bottom plate, and one end of the second limiting strip is connected to the second bottom plate.
[0010] A plurality of transverse grooves are vertically arranged on the opposite surfaces of the two side plates, and the material plates are placed in the transverse grooves.
[0011] The front end of the material plate is provided with a bayonet, the material plate is provided with a plurality of material grooves, and the bottom of the material grooves is provided with strip holes.
[0012] The opposite surfaces of the two first limit strips are provided with a plurality of vertically arranged abutment protrusions, a first slot is formed between the abutment protrusions and the side plate, and a spacing groove is provided between adjacent abutment protrusions, the groove width of the spacing groove is the same as the transverse groove, and the spacing groove is aligned with the transverse groove.
[0013] At least two openings are formed on the top plate.
[0014] The first slot and the second slot have the same size.
[0015] The first slot of the utility model is equipped with a retaining member to prevent the sheet from falling out during transportation. When the sheet needs to be taken out, the retaining member can be placed in the second slot, which is easy to operate. At the same time, the bottom plate assembly of the utility model includes a first bottom plate and a second bottom plate, and a space-avoiding groove is provided between the first and second bottom plates. The space-avoiding groove can cooperate with the concave and convex top plate of the utility model to achieve multi-layer stacking while effectively improving stability. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 It is a schematic diagram of the three-dimensional structure of the utility model;
[0017] Figure 2 This is a schematic diagram of the stacking state of the utility model;
[0018] Figure 3 This is a schematic diagram of the disassembled structure of the utility model;
[0019] Figure 4 This is a schematic diagram of the structure of the first limit bar of the utility model;
[0020] Figure 5 It is a schematic structural diagram of the second limit bar of the utility model.
[0021] In the figure: 100-bottom plate group, 110-first bottom plate, 111-avoidance groove, 120-second bottom plate, 200-side plate, 210-horizontal groove, 220-recess, 300-top plate, 310-opening, 400-first limiting strip, 410-stop protrusion, 411-spacer groove, 420-connecting protrusion, 430-first slot, 440-stop member, 500-second limiting strip, 510-second slot, 600-material plate, 610-bayonet, 620-material slot, 630-hole. DETAILED DESCRIPTION
[0022] In order to facilitate understanding by those skilled in the art, the present invention is further described in detail below with reference to the accompanying drawings and specific embodiments.
[0023] like Figure 1 、 2 As shown, a transit temporary storage device for electronic components includes a bottom plate group 100, the bottom plate group 100 includes a first bottom plate 110 and a second bottom plate 120, and side plates 200 are provided on both sides of the top surface of the bottom plate group 100. The first bottom plate 110 is threadedly connected to the front end of the bottom surface of the side plate 200, and the second bottom plate 120 is threadedly connected to the rear end of the bottom surface of the side plate 200. A clearance groove 111 is provided between the first bottom plate 110 and the second bottom plate 120. A top plate 300 is provided at the top of the side plate 200, and the clearance groove 111 matches the top plate 300. When stacking, the clearance groove 111 of the upper device will match the top plate 300 of the lower device, achieving multi-layer stacking while having high stability. The top plate 300 is provided with at least two openings 310, through which operators can conveniently lift and lower the temporary transfer storage device of this embodiment. Furthermore, compared to conventional handles, the openings 310 do not occupy any space and do not affect stacking. Compared to conventional temporary transfer storage devices, this embodiment allows for stacking multiple items before transferring them, effectively reducing the number of transfers and improving production efficiency.
[0024] like Figure 1 、 3As shown, in this embodiment, the bottom plate assembly 100, side plates 200, and top plate 300 cooperate to form a cubic frame. Several layers of material sheets 600 are arranged vertically between the two side plates 200. These material sheets 600 are used to temporarily store materials. The opposing surfaces of the two side plates 200 are each provided with a plurality of transverse grooves 210. The material sheets 600 are placed within these grooves and can slide within them for easy access. The front ends of the material sheets 600 are provided with latches 610 for interfacing with external equipment. Several material troughs 620 are also provided on the material sheets 600 for storing materials. When this embodiment is placed on production equipment, a mechanism such as a robot can be used to engage the latches 610 and pull the material sheets 600 out. The material troughs 620 can correspond to conveyor belts. External equipment can push the material from one end of the troughs 620 to move it, allowing the material to be transferred from the troughs 620 to the conveyor belt. The bottom of the material trough 620 is provided with strip holes 630. The strip holes 630 can reduce the weight of the material plate 600 and prevent the accumulation of dust caused by the material.
[0025] like Figure 1 、 4 As shown in Figures 5 and 6, the front and rear ends of the side panels 200 are respectively provided with a first limiting strip 400 and a second limiting strip 500. A first slot 430 is provided between the first limiting strip 400 and the side panels 200. A stopper 440 is provided in the first slot 430 to prevent the sheet material 600 from slipping. The stopper 440 is a stopper plate. The opposing surfaces of the two first limiting strips 400 are provided with a plurality of vertically arranged stopper protrusions 410. The stopper protrusions 410 form a first slot 430 with the side panels 200. When the stopper plate is placed in the first slot 430, the sheet material 600 is prevented from sliding outward by the stopper plate, thereby effectively preventing the sheet material 600 from falling during transportation. A spacing groove 411 is provided between adjacent stop protrusions 410 . The width of the spacing groove 411 is the same as that of the transverse groove 210 , and the spacing groove 411 is aligned with the transverse groove 210 . This allows the material plate 600 to enter the transverse groove 210 through the spacing groove 411 without being affected by the stop protrusion 410 and without affecting the use of the first slot 430 .
[0026] like Figure 3 、 4As shown in Figure 5, the first limiting strip 400 is provided with a connecting protrusion 420 on the side adjacent to the side panel 200. The side of the side panel 200 is provided with a recess 220 that matches the connecting protrusion 420. The connecting protrusion 420 and the recess 220 are screwed together. The matching of the connecting protrusion 420 and the recess 220 does not produce a protrusion on the surface of the side panel 200 and the first limiting strip 400, making it easy to place. The first limiting strip 400 is connected to the front end of the side panel 200 through the matching connecting protrusion 420 and the recess 220. At the same time, one end of the first limiting strip 400 is connected to the front end of the first bottom plate 110. In addition to limiting the retaining plate, the first limiting strip 400 can also effectively improve the connection stability between the first bottom plate 110 and the side panel 200. The second limiting bar 500 is threadedly connected to the rear end of the side panel 200 and one end is connected to the rear end of the second bottom panel 120. The second limiting bar 500 also has a second slot 510 that is the same size as the first slot 430. When the sheet 600 is no longer needed for support, a support plate can be placed in the second slot 510. In addition to providing a place for the support plate, the second limiting bar 500 also strengthens the connection stability between the second bottom panel 120 and the side panel 200. Furthermore, when the second limiting bar 500 is connected to the side panel 200, it abuts against the end of the transverse groove 210, limiting the sheet 600 and preventing it from sliding excessively toward the rear end of the transverse groove 210.
[0027] The above embodiments are preferred implementations of the present invention and are not intended to limit the present invention. Without departing from the scope of the present invention, any obvious replacements are within the scope of protection of the present invention.
Claims
1. A temporary storage device for electronic components, comprising a bottom plate assembly (100), characterized in that: Side panels (200) are provided on both sides of the top surface of the bottom panel group (100), a top panel (300) is provided at the top of the side panels (200), a plurality of layers of material panels (600) are vertically arranged between the two side panels (200), a first limiting strip (400) and a second limiting strip (500) are provided at the front and rear ends of the side panels (200), a first slot (430) is provided between the first limiting strip (400) and the side panels (200), a stopper (440) for preventing the material panel (600) from slipping is provided in the first slot (430), and a second slot (510) is provided on the second limiting strip (500).
2. The electronic device transit temporary storage device according to claim 1, characterized in that: The bottom plate group (100) comprises a first bottom plate (110) and a second bottom plate (120); a space-avoiding groove (111) is provided between the first bottom plate (110) and the second bottom plate (120); the space-avoiding groove (111) matches the top plate (300).
3. The electronic device transit temporary storage device according to claim 2, characterized in that: A connecting protrusion (420) is provided on a side of the first limiting strip (400) adjacent to the side panel (200), a recess (220) matching the connecting protrusion (420) is provided on a side surface of the side panel (200), and the connecting protrusion (420) is fixed to the recess (220) by threads.
4. The electronic device transit temporary storage device according to claim 3, characterized in that: One end of the first limiting strip (400) is connected to the first bottom plate (110), and one end of the second limiting strip (500) is connected to the second bottom plate (120).
5. The electronic device transit temporary storage device according to claim 4, characterized in that: A plurality of transverse grooves (210) are vertically arranged on the opposite surfaces of the two side plates (200), and the material plate (600) is placed in the transverse grooves (210).
6. The electronic device transit temporary storage device according to claim 5, characterized in that: The front end of the material plate (600) is provided with a bayonet (610), a plurality of material grooves (620) are provided on the material plate (600), and a strip hole (630) is provided at the bottom of the material groove (620).
7. The electronic device transit temporary storage device according to claim 6, characterized in that: The opposing surfaces of the two first limiting strips (400) are provided with a plurality of vertically arranged stop protrusions (410), a first slot (430) is formed between the stop protrusions (410) and the side plate (200), and a spacing groove (411) is provided between adjacent stop protrusions (410), the groove width of the spacing groove (411) being the same as that of the transverse groove (210), and the spacing groove (411) is aligned with the transverse groove (210).
8. The electronic device transit temporary storage device according to claim 7, characterized in that: At least two openings (310) are provided on the top plate (300).
9. The electronic device temporary storage device according to any one of claims 1 to 8, characterized in that: The first slot (430) and the second slot (510) have the same size.